Docking Troponin T onto the Tropomyosin Overlapping Domain of Thin Filaments

Elumalai Pavadai1, Michael J Rynkiewicz1, Anita Ghosh1

  • 1Department of Physiology and Biophysics, Boston University School of Medicine, Boston, Massachusetts.

Biophysical Journal
|December 23, 2019
PubMed

Insights

Accurate thin filament models are crucial for understanding muscle regulation. This study uses unbiased docking to create improved models of troponin T1 (TnT1) interacting with actin-tropomyosin, revealing a unique binding site and stabilizing interactions.

Area of Science:

  • Molecular biology
  • Biophysics
  • Structural biology

Background:

  • Understanding muscle contraction requires atomic models of the thin filament, including actin, tropomyosin, and troponin.
  • Previous models have shown instability and artifactual subunit organization during molecular dynamics simulations.
  • Existing models struggle to reconcile experimental binding affinities with structural complementarity between troponin T1 (TnT1) and tropomyosin.

Purpose of the Study:

  • To develop improved atomic models of the troponin T1 (TnT1) interaction with the actin-tropomyosin complex.
  • To identify the precise binding location and stabilizing interactions of TnT1 on the thin filament.
  • To address limitations of previous computational models that exhibited instability and poor structural integrity.

Main Methods:

  • Employed unbiased molecular docking methodologies (PIPER, ClusPro) to test billions of TnT1 orientations on tropomyosin and actin-tropomyosin.
  • Focused conformational searches on well-characterized TnT1 helical domains, avoiding unstructured regions.
  • Utilized interaction energy optimization and extensive molecular dynamics simulations to validate docked models.

Main Results:

  • TnT1 docked uniquely to a specific site on actin-bound tropomyosin, distinct from binding to isolated tropomyosin.
  • The validated TnT1-tropomyosin interaction features abundant salt bridges and integrated hydrophobic networks, particularly at the tropomyosin N-/C-terminal overlapping domain.
  • This refined linkage creates well-defined molecular crevices and demonstrates significantly favorable interaction energies compared to prior models.

Conclusions:

  • The study presents a more accurate and stable atomic model for TnT1 binding to the actin-tropomyosin complex.
  • The identified unique binding site and stabilizing interactions provide critical insights into thin filament regulation.
  • These improved models are essential for future studies on muscle contraction mechanisms and associated diseases.

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